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首页> 外文期刊>Journal of nanoscience and nanotechnology >Bundled Carbon Nanotube-Based Sensor on Paper-Based Microfluidic Device
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Bundled Carbon Nanotube-Based Sensor on Paper-Based Microfluidic Device

机译:纸基微流控设备上基于捆绑碳纳米管的传感器

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摘要

Bundled carbon nanotube (CNT)-based sensor has been fabricated on paper substrate for chemical sensing applications. Integration of the sensor and fluidic channel was demonstrated for the potential development of a paper-based microfluidic device. In this work, electrical pH measurement of analyte solution was presented to show the functionality of the device. The device with the functions of fluidic transportation and chemical sensing was fabricated on a single paper. The bundled CNT-based sensor was first formed on a sheet of paper by vacuum filtration process. Hence, the hydrophilic channel across the sensor was defined by the application of polydimethylsiloxane (PDMS) material. Therefore, aqueous solution, e.g., sample, can be passively transported along the channels by wicking through the hydrophilic fibers of paper. The pH value of the solution can be electrically measured by the sensor. Determination of the pH value from 3 to 11 of the solutions was demonstrated by measuring the resistance change of the sensor. Because the proposed device is low cost, simple, flexible, and disposable, it is suitable for the development of the analytical device for the developing countries and harsh environments. Moreover, because CNT has excellent properties and can be functionalized by various molecules, the proposed paper-based microfluidic device has potential to realize more chemical and biological assays on paper with high sensitivity and specificity.
机译:基于捆绑碳纳米管(CNT)的传感器已在纸质基材上制造,用于化学传感应用。演示了传感器和流体通道的集成对于纸基微流控设备的潜在发展。在这项工作中,提出了分析物溶液的电pH测量,以显示设备的功能。具有流体传输和化学传感功能的设备是在一张纸上制造的。捆绑的基于CNT的传感器首先通过真空过滤过程形成在一张纸上。因此,跨传感器的亲水通道是由聚二甲基硅氧烷(PDMS)材料的应用定义的。因此,水溶液,例如样品,可以通过芯吸作用穿过纸的亲水性纤维而沿通道被动地运输。溶液的pH值可以通过传感器进行电测量。通过测量传感器的电阻变化,可以确定溶液中3至11的pH值。由于所提出的设备成本低,简单,灵活且可抛弃,因此适合于发展中国家和恶劣环境下分析设备的开发。而且,由于CNT具有优异的性能并且可以被多种分子官能化,因此所提出的基于纸的微流体装置具有以高灵敏度和特异性在纸上实现更多化学和生物学测定的潜力。

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